Ferrand Patrick, Wenger Jérôme, Devilez Alexis, Pianta Martina, Stout Brian, Bonod Nicolas, Popov Evgueni, Rigneault Hervé
Institut Fresnel, MOSAIC group, Aix-Marseille Université, CNRS Domaine Universitaire de St Jérôme, 13397 Marseille, France.
Opt Express. 2008 May 12;16(10):6930-40. doi: 10.1364/oe.16.006930.
We report the direct experimental observation of photonic nanojets created by single latex microspheres illuminated by a plane wave at a wavelength of 520 nm. Measurements are performed with a fast scanning confocal microscope in detection mode, where the detection pinhole defines a diffraction-limited observation volume that is scanned in three dimensions over the microsphere vicinity. From the collected stack of images, we reconstruct the full 3 dimensional photonic nanojet beam. Observations are conducted for polystyrene spheres of 1, 3 and 5 microm diameter deposited on a glass substrate, the upper medium being air or water. Experimental results are compared to calculations performed using the Mie theory. We measure nanojet sizes as small as 270 nm FWHM for a 3 microm sphere at a wavelength lambda of 520 nm. The beam keeps a subwavelength FWHM over a propagation distance of more than 3 lambda, displaying all the specificities of a photonic nanojet.
我们报告了在波长为520nm的平面波照射下,单个乳胶微球产生的光子纳米喷流的直接实验观测结果。测量是使用快速扫描共聚焦显微镜在检测模式下进行的,其中检测针孔定义了一个衍射极限观测体积,该体积在微球附近进行三维扫描。从收集到的图像堆栈中,我们重建了完整的三维光子纳米喷流束。对沉积在玻璃基板上的直径为1、3和5微米的聚苯乙烯球体进行了观测,上层介质为空气或水。将实验结果与使用米氏理论进行的计算进行了比较。我们在波长λ为520nm时,测量到一个3微米球体的纳米喷流尺寸小至270nm FWHM。该光束在超过3λ的传播距离上保持亚波长FWHM,展现出光子纳米喷流的所有特性。